Topological representation of layered hybrid lead halides for machine-learning using universal clusters

Fuente: arXiv
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Bibliographic Details
Main Authors: Marchenko, Ekaterina I., Khrenova, Maria G., V., Korolev V., Goodilin, Eugene A., Tarasov, Alexey B.
Format: Preprint
Published: 2024
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_version_ 1866913579838472192
author Marchenko, Ekaterina I.
Khrenova, Maria G.
V., Korolev V.
Goodilin, Eugene A.
Tarasov, Alexey B.
author_facet Marchenko, Ekaterina I.
Khrenova, Maria G.
V., Korolev V.
Goodilin, Eugene A.
Tarasov, Alexey B.
contents Layered hybrid halide compounds offer promising functional properties, particularly tunable band gaps, conductivity, light harvesting thus making them prospective for applications in photovoltaics and optoelectronics. This study exemplifies an approach of predicting band gaps using machine learning models enhanced by invariant topological representations of these materials using the atom-specific persistent homology method in order to facilitate the discovery and design of new hybrid halide materials with tailored electronic properties.
format Preprint
id arxiv_https___arxiv_org_abs_2411_11122
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Topological representation of layered hybrid lead halides for machine-learning using universal clusters
Marchenko, Ekaterina I.
Khrenova, Maria G.
V., Korolev V.
Goodilin, Eugene A.
Tarasov, Alexey B.
Materials Science
Layered hybrid halide compounds offer promising functional properties, particularly tunable band gaps, conductivity, light harvesting thus making them prospective for applications in photovoltaics and optoelectronics. This study exemplifies an approach of predicting band gaps using machine learning models enhanced by invariant topological representations of these materials using the atom-specific persistent homology method in order to facilitate the discovery and design of new hybrid halide materials with tailored electronic properties.
title Topological representation of layered hybrid lead halides for machine-learning using universal clusters
topic Materials Science
url https://arxiv.org/abs/2411.11122